10
(V
OH
- V
CC
) – HIGH OUTPUT VOLTAGE DROP – V
-40
-4
T
A
– TEMPERATURE – °C
100
-1
-2
-20
0
0 20 40
-3
60 80
I
F
= 7 to 16 mA
I
OUT
= -100 mA
V
CC
= 15 to 30 V
V
EE
= 0 V
I
OH
– OUTPUT HIGH CURRENT – A
-40
0.25
T
A
– TEMPERATURE – °C
100
0.45
0.40
-20
0.50
0 20 40
0.30
60 80
I
F
= 7 to 16 mA
V
OUT
= V
CC
- 4 V
V
CC
= 15 to 30 V
V
EE
= 0 V
0.35
(V
OH
- V
CC
) – OUTPUT HIGH VOLTAGE DROP – V
0
-6
I
OH
– OUTPUT HIGH CURRENT – A
1.0
-2
-3
0.2
-1
0.4 0.6
-5
0.8
I
F
= 7 to 16 mA
V
CC
= 15 to 30 V
V
EE
= 0 V
-4
100 °C
25 °C
-40 °C
V
OL
– OUTPUT LOW VOLTAGE – V
-40
0
T
A
– TEMPERATURE – °C
100
0.8
0.6
-20
1.0
0 20 40
0.2
60 80
V
F(OFF)
= -3.0 to 0.8 V
I
OUT
= 100 mA
V
CC
= 15 to 30 V
V
EE
= 0 V
0.4
I
OL
– OUTPUT LOW CURRENT – A
-40
0
T
A
– TEMPERATURE – °C
100
0.8
0.4
-20
1.0
0 20 40
0.2
60 80
V
F(OFF)
= -3.0 to 0.8 V
V
OUT
= 2.5 V
V
CC
= 15 to 30 V
V
EE
= 0 V
0.6
V
OL
– OUTPUT LOW VOLTAGE – V
0
0
I
OL
– OUTPUT LOW CURRENT – A
1.0
4
0.2
5
0.4 0.6
1
0.8
V
F(OFF)
= -3.0 to 0.8 V
V
CC
= 15 to 30 V
V
EE
= 0 V
2
100 °C
25 °C
-40 °C
3
I
CC
– SUPPLY CURRENT – mA
-40
1.5
T
A
– TEMPERATURE – °C
100
3.0
2.5
-20
3.5
0 20 40
2.0
60 80
V
CC
= 30 V
V
EE
= 0 V
I
F
= 10 mA for I
CCH
I
F
= 0 mA for I
CCL
I
CCH
I
CCL
I
CC
– SUPPLY CURRENT – mA
15
1.5
V
CC
– SUPPLY VOLTAGE – V
30
3.0
2.5
3.5
20
2.0
25
I
F
= 10 mA for I
CCH
I
F
= 0 mA for I
CCL
T
A
= 25 °C
V
EE
= 0 V
I
CCH
I
CCL
I
FLH
– LOW TO HIGH CURRENT THRESHOLD – mA
-40
0
T
A
– TEMPERATURE – °C
100
3
2
-20
4
0 20 40
1
60 80
5
V
CC
= 15 TO 30 V
V
EE
= 0 V
OUTPUT = OPEN
Figure 4. V
OL
vs. Temperature. Figure 5. I
OL
vs. Temperature. Figure 6. V
OL
vs. I
OL
.
Figure 1. V
OH
vs. Temperature. Figure 2. I
OH
vs. Temperature.
Figure 3. V
OH
vs. I
OH
.
Figure 7. I
CC
vs. Temperature. Figure 8. I
CC
vs. V
CC
. Figure 9. I
FLH
vs. Temperature.
11
T
p
– PROPAGATION DELAY – ns
15
100
V
CC
– SUPPLY VOLTAGE – V
30
400
300
500
20
200
25
I
F
= 10 mA
T
A
= 25 °C
Rg = 47
Cg = 3 nF
DUTY CYCLE = 50%
f = 10 kHz
T
PLH
T
PHL
T
p
– PROPAGATION DELAY – ns
6
100
I
F
– FORWARD LED CURRENT – mA
16
400
300
500
10
200
12
V
CC
= 30 V, V
EE
= 0 V
Rg = 47 , Cg = 3 nF
T
A
= 25 °C
DUTY CYCLE = 50%
f = 10 kHz
T
PLH
T
PHL
148
T
p
– PROPAGATION DELAY – ns
-40
100
T
A
– TEMPERATURE – °C
100
400
300
-20
500
0 20 40
200
60 80
T
PLH
T
PHL
I
F(ON)
= 10 mA
I
F(OFF)
= 0 mA
V
CC
= 30 V, V
EE
= 0 V
Rg = 47 , Cg = 3 nF
DUTY CYCLE = 50%
f = 10 kHz
T
p
– PROPAGATION DELAY – ns
0
100
Rg – SERIES LOAD RESISTANCE –
200
400
300
50
500
100
200
150
T
PLH
T
PHL
V
CC
= 30 V, V
EE
= 0 V
T
A
= 25 °C
I
F
= 10 mA
Cg = 3 nF
DUTY CYCLE = 50%
f = 10 kHz
T
p
– PROPAGATION DELAY – ns
0
100
Cg – LOAD CAPACITANCE – nF
100
400
300
20
500
40
200
60 80
T
PLH
T
PHL
V
CC
= 30 V, V
EE
= 0 V
T
A
= 25 °C
I
F
= 10 mA
Rg = 47
DUTY CYCLE = 50%
f = 10 kHz
V
O
– OUTPUT VOLTAGE – V
0
0
I
F
– FORWARD LED CURRENT – mA
5
25
15
1
30
2
5
3 4
20
10
I
F
– FORWARD CURRENT – mA
1.10
0.001
V
F
– FORWARD VOLTAGE – V
1.60
10
1.0
0.1
1.20
1000
1.30 1.40 1.50
T
A
= 25°C
I
F
V
F
+
0.01
100
Figure 16. Input Current vs. Forward Voltage.
Figure 15. Transfer Characteristics.Figure 14. Propagation Delay vs. Cg.Figure 13. Propagation Delay vs. Rg.
Figure 10. Propagation Delay vs. V
CC
. Figure 11. Propagation Delay vs. I
F
. Figure 12. Propagation Delay vs. Temperature.
12
0.1 µF
V
CC
= 15
to 30 V
1
3
+
2
4
8
6
7
5
2.5 V
I
OL
+
0.1 µF
V
CC
= 15
to 30 V
1
3
I
F
= 7 to
16 mA
+
2
4
8
6
7
5
+
4 V
I
OH
0.1 µF
V
CC
= 15
to 30 V
1
3
I
F
= 7 to
16 mA
+
2
4
8
6
7
5
100 mA
V
OH
0.1 µF
V
CC
= 15
to 30 V
1
3
+
2
4
8
6
7
5
100 mA
V
OL
0.1 µF
V
CC
= 15
to 30 V
1
3
I
F
+
2
4
8
6
7
5
V
O
> 5 V
0.1 µF
V
CC
1
3
I
F
= 10 mA
+
2
4
8
6
7
5
V
O
> 5 V
Figure 22. UVLO Test Circuit.
Figure 17. I
OH
Test Circuit. Figure 18. I
OL
Test Circuit.
Figure 19. V
OH
Test Circuit. Figure 20. V
OL
Test Circuit.
Figure 21. I
FLH
Test Circuit.

HCPL-3150-000E

Mfr. #:
Manufacturer:
Broadcom / Avago
Description:
Logic Output Optocouplers 0.5A IGBT Gate Drive
Lifecycle:
New from this manufacturer.
Delivery:
DHL FedEx Ups TNT EMS
Payment:
T/T Paypal Visa MoneyGram Western Union